1 /* SPDX-License-Identifier: GPL-2.0 */ 2 /* 3 * Copyright (C) 2007 Oracle. All rights reserved. 4 */ 5 6 #ifndef BTRFS_CTREE_H 7 #define BTRFS_CTREE_H 8 9 #include <linux/cleanup.h> 10 #include <linux/spinlock.h> 11 #include <linux/rbtree.h> 12 #include <linux/mutex.h> 13 #include <linux/wait.h> 14 #include <linux/list.h> 15 #include <linux/atomic.h> 16 #include <linux/xarray.h> 17 #include <linux/refcount.h> 18 #include <uapi/linux/btrfs_tree.h> 19 #include "locking.h" 20 #include "accessors.h" 21 22 struct extent_buffer; 23 struct btrfs_block_rsv; 24 struct btrfs_trans_handle; 25 struct btrfs_block_group; 26 27 /* Read ahead values for struct btrfs_path.reada */ 28 enum { 29 READA_NONE, 30 READA_BACK, 31 READA_FORWARD, 32 /* 33 * Similar to READA_FORWARD but unlike it: 34 * 35 * 1) It will trigger readahead even for leaves that are not close to 36 * each other on disk; 37 * 2) It also triggers readahead for nodes; 38 * 3) During a search, even when a node or leaf is already in memory, it 39 * will still trigger readahead for other nodes and leaves that follow 40 * it. 41 * 42 * This is meant to be used only when we know we are iterating over the 43 * entire tree or a very large part of it. 44 */ 45 READA_FORWARD_ALWAYS, 46 }; 47 48 /* 49 * btrfs_paths remember the path taken from the root down to the leaf. 50 * level 0 is always the leaf, and nodes[1...BTRFS_MAX_LEVEL] will point 51 * to any other levels that are present. 52 * 53 * The slots array records the index of the item or block pointer 54 * used while walking the tree. 55 */ 56 struct btrfs_path { 57 struct extent_buffer *nodes[BTRFS_MAX_LEVEL]; 58 int slots[BTRFS_MAX_LEVEL]; 59 /* if there is real range locking, this locks field will change */ 60 u8 locks[BTRFS_MAX_LEVEL]; 61 u8 reada; 62 u8 lowest_level; 63 64 /* 65 * set by btrfs_split_item, tells search_slot to keep all locks 66 * and to force calls to keep space in the nodes 67 */ 68 bool search_for_split:1; 69 /* Keep some upper locks as we walk down. */ 70 bool keep_locks:1; 71 bool skip_locking:1; 72 bool search_commit_root:1; 73 bool need_commit_sem:1; 74 bool skip_release_on_error:1; 75 /* 76 * Indicate that new item (btrfs_search_slot) is extending already 77 * existing item and ins_len contains only the data size and not item 78 * header (ie. sizeof(struct btrfs_item) is not included). 79 */ 80 bool search_for_extension:1; 81 /* Stop search if any locks need to be taken (for read) */ 82 bool nowait:1; 83 }; 84 85 #define BTRFS_PATH_AUTO_FREE(path_name) \ 86 struct btrfs_path *path_name __free(btrfs_free_path) = NULL 87 88 /* 89 * This defines an on-stack path that will be auto released when exiting the scope. 90 * 91 * It is compatible with any existing manual btrfs_release_path() calls. 92 */ 93 #define BTRFS_PATH_AUTO_RELEASE(path_name) \ 94 struct btrfs_path path_name __free(btrfs_release_path) = { 0 } 95 96 /* 97 * The state of btrfs root 98 */ 99 enum { 100 /* 101 * btrfs_record_root_in_trans is a multi-step process, and it can race 102 * with the balancing code. But the race is very small, and only the 103 * first time the root is added to each transaction. So IN_TRANS_SETUP 104 * is used to tell us when more checks are required 105 */ 106 BTRFS_ROOT_IN_TRANS_SETUP, 107 108 /* 109 * Set if tree blocks of this root can be shared by other roots. 110 * Only subvolume trees and their reloc trees have this bit set. 111 * Conflicts with TRACK_DIRTY bit. 112 * 113 * This affects two things: 114 * 115 * - How balance works 116 * For shareable roots, we need to use reloc tree and do path 117 * replacement for balance, and need various pre/post hooks for 118 * snapshot creation to handle them. 119 * 120 * While for non-shareable trees, we just simply do a tree search 121 * with COW. 122 * 123 * - How dirty roots are tracked 124 * For shareable roots, btrfs_record_root_in_trans() is needed to 125 * track them, while non-subvolume roots have TRACK_DIRTY bit, they 126 * don't need to set this manually. 127 */ 128 BTRFS_ROOT_SHAREABLE, 129 BTRFS_ROOT_TRACK_DIRTY, 130 BTRFS_ROOT_IN_RADIX, 131 BTRFS_ROOT_ORPHAN_ITEM_INSERTED, 132 BTRFS_ROOT_DEFRAG_RUNNING, 133 BTRFS_ROOT_FORCE_COW, 134 BTRFS_ROOT_DIRTY, 135 BTRFS_ROOT_DELETING, 136 137 /* 138 * Reloc tree is orphan, only kept here for qgroup delayed subtree scan 139 * 140 * Set for the subvolume tree owning the reloc tree. 141 */ 142 BTRFS_ROOT_DEAD_RELOC_TREE, 143 /* Mark dead root stored on device whose cleanup needs to be resumed */ 144 BTRFS_ROOT_DEAD_TREE, 145 /* The root has a log tree. Used for subvolume roots and the tree root. */ 146 BTRFS_ROOT_HAS_LOG_TREE, 147 /* Qgroup flushing is in progress */ 148 BTRFS_ROOT_QGROUP_FLUSHING, 149 /* We started the orphan cleanup for this root. */ 150 BTRFS_ROOT_ORPHAN_CLEANUP, 151 /* This root has a drop operation that was started previously. */ 152 BTRFS_ROOT_UNFINISHED_DROP, 153 /* This reloc root needs to have its buffers lockdep class reset. */ 154 BTRFS_ROOT_RESET_LOCKDEP_CLASS, 155 }; 156 157 /* 158 * Record swapped tree blocks of a subvolume tree for delayed subtree trace 159 * code. For detail check comment in fs/btrfs/qgroup.c. 160 */ 161 struct btrfs_qgroup_swapped_blocks { 162 spinlock_t lock; 163 /* RM_EMPTY_ROOT() of above blocks[] */ 164 bool swapped; 165 struct rb_root blocks[BTRFS_MAX_LEVEL]; 166 }; 167 168 /* 169 * in ram representation of the tree. extent_root is used for all allocations 170 * and for the extent tree extent_root root. 171 */ 172 struct btrfs_root { 173 struct rb_node rb_node; 174 175 struct extent_buffer *node; 176 177 struct extent_buffer *commit_root; 178 struct btrfs_root *log_root; 179 struct btrfs_root *reloc_root; 180 181 unsigned long state; 182 struct btrfs_root_item root_item; 183 struct btrfs_key root_key; 184 struct btrfs_fs_info *fs_info; 185 struct extent_io_tree dirty_log_pages; 186 187 struct mutex objectid_mutex; 188 189 spinlock_t accounting_lock; 190 struct btrfs_block_rsv *block_rsv; 191 192 struct mutex log_mutex; 193 wait_queue_head_t log_writer_wait; 194 wait_queue_head_t log_commit_wait[2]; 195 struct list_head log_ctxs[2]; 196 /* Used only for log trees of subvolumes, not for the log root tree */ 197 atomic_t log_writers; 198 bool log_commit[2]; 199 /* 200 * Protected by the 'log_mutex' lock but can be read without holding 201 * that lock to avoid unnecessary lock contention, in which case it 202 * should be read using btrfs_get_root_log_transid() except if it's a 203 * log tree in which case it can be directly accessed. Updates to this 204 * field should always use btrfs_set_root_log_transid(), except for log 205 * trees where the field can be updated directly. 206 */ 207 int log_transid; 208 /* No matter the commit succeeds or not*/ 209 int log_transid_committed; 210 /* 211 * Just be updated when the commit succeeds. Use 212 * btrfs_get_root_last_log_commit() and btrfs_set_root_last_log_commit() 213 * to access this field. 214 */ 215 int last_log_commit; 216 217 u64 last_trans; 218 219 u64 free_objectid; 220 221 struct btrfs_key defrag_progress; 222 struct btrfs_key defrag_max; 223 224 /* The dirty list is only used by non-shareable roots */ 225 struct list_head dirty_list; 226 227 struct list_head root_list; 228 229 /* Xarray that keeps track of in-memory inodes. */ 230 struct xarray inodes; 231 232 /* Xarray that keeps track of delayed nodes of every inode. */ 233 struct xarray delayed_nodes; 234 /* 235 * right now this just gets used so that a root has its own devid 236 * for stat. It may be used for more later 237 */ 238 dev_t anon_dev; 239 240 spinlock_t root_item_lock; 241 refcount_t refs; 242 243 struct mutex delalloc_mutex; 244 spinlock_t delalloc_lock; 245 /* 246 * all of the inodes that have delalloc bytes. It is possible for 247 * this list to be empty even when there is still dirty data=ordered 248 * extents waiting to finish IO. 249 */ 250 struct list_head delalloc_inodes; 251 struct list_head delalloc_root; 252 u64 nr_delalloc_inodes; 253 254 struct mutex ordered_extent_mutex; 255 /* 256 * this is used by the balancing code to wait for all the pending 257 * ordered extents 258 */ 259 spinlock_t ordered_extent_lock; 260 261 /* 262 * all of the data=ordered extents pending writeback 263 * these can span multiple transactions and basically include 264 * every dirty data page that isn't from nodatacow 265 */ 266 struct list_head ordered_extents; 267 struct list_head ordered_root; 268 u64 nr_ordered_extents; 269 270 /* 271 * Not empty if this subvolume root has gone through tree block swap 272 * (relocation) 273 * 274 * Will be used by reloc_control::dirty_subvol_roots. 275 */ 276 struct list_head reloc_dirty_list; 277 278 /* 279 * Number of currently running SEND ioctls to prevent 280 * manipulation with the read-only status via SUBVOL_SETFLAGS 281 */ 282 int send_in_progress; 283 /* 284 * Number of currently running deduplication operations that have a 285 * destination inode belonging to this root. Protected by the lock 286 * root_item_lock. 287 */ 288 int dedupe_in_progress; 289 /* For exclusion of snapshot creation and nocow writes */ 290 struct btrfs_drew_lock snapshot_lock; 291 292 atomic_t snapshot_force_cow; 293 294 /* For qgroup metadata reserved space */ 295 spinlock_t qgroup_meta_rsv_lock; 296 u64 qgroup_meta_rsv_pertrans; 297 u64 qgroup_meta_rsv_prealloc; 298 wait_queue_head_t qgroup_flush_wait; 299 300 /* Number of active swapfiles */ 301 atomic_t nr_swapfiles; 302 303 /* Record pairs of swapped blocks for qgroup */ 304 struct btrfs_qgroup_swapped_blocks swapped_blocks; 305 306 /* Used only by log trees, when logging csum items */ 307 struct extent_io_tree log_csum_range; 308 309 /* Used in simple quotas, track root during relocation. */ 310 u64 relocation_src_root; 311 312 #ifdef CONFIG_BTRFS_FS_RUN_SANITY_TESTS 313 u64 alloc_bytenr; 314 #endif 315 316 #ifdef CONFIG_BTRFS_DEBUG 317 struct list_head leak_list; 318 #endif 319 }; 320 321 static inline bool btrfs_root_readonly(const struct btrfs_root *root) 322 { 323 /* Byte-swap the constant at compile time, root_item::flags is LE */ 324 return (root->root_item.flags & cpu_to_le64(BTRFS_ROOT_SUBVOL_RDONLY)) != 0; 325 } 326 327 static inline bool btrfs_root_dead(const struct btrfs_root *root) 328 { 329 /* Byte-swap the constant at compile time, root_item::flags is LE */ 330 return (root->root_item.flags & cpu_to_le64(BTRFS_ROOT_SUBVOL_DEAD)) != 0; 331 } 332 333 static inline u64 btrfs_root_id(const struct btrfs_root *root) 334 { 335 return root->root_key.objectid; 336 } 337 338 static inline int btrfs_get_root_log_transid(const struct btrfs_root *root) 339 { 340 return READ_ONCE(root->log_transid); 341 } 342 343 static inline void btrfs_set_root_log_transid(struct btrfs_root *root, int log_transid) 344 { 345 WRITE_ONCE(root->log_transid, log_transid); 346 } 347 348 static inline int btrfs_get_root_last_log_commit(const struct btrfs_root *root) 349 { 350 return READ_ONCE(root->last_log_commit); 351 } 352 353 static inline void btrfs_set_root_last_log_commit(struct btrfs_root *root, int commit_id) 354 { 355 WRITE_ONCE(root->last_log_commit, commit_id); 356 } 357 358 static inline u64 btrfs_get_root_last_trans(const struct btrfs_root *root) 359 { 360 return READ_ONCE(root->last_trans); 361 } 362 363 static inline void btrfs_set_root_last_trans(struct btrfs_root *root, u64 transid) 364 { 365 WRITE_ONCE(root->last_trans, transid); 366 } 367 368 /* 369 * Return the generation this root started with. 370 * 371 * Every normal root that is created with root->root_key.offset set to it's 372 * originating generation. If it is a snapshot it is the generation when the 373 * snapshot was created. 374 * 375 * However for TREE_RELOC roots root_key.offset is the objectid of the owning 376 * tree root. Thankfully we copy the root item of the owning tree root, which 377 * has it's last_snapshot set to what we would have root_key.offset set to, so 378 * return that if this is a TREE_RELOC root. 379 */ 380 static inline u64 btrfs_root_origin_generation(const struct btrfs_root *root) 381 { 382 if (btrfs_root_id(root) == BTRFS_TREE_RELOC_OBJECTID) 383 return btrfs_root_last_snapshot(&root->root_item); 384 return root->root_key.offset; 385 } 386 387 /* 388 * Structure that conveys information about an extent that is going to replace 389 * all the extents in a file range. 390 */ 391 struct btrfs_replace_extent_info { 392 u64 disk_offset; 393 u64 disk_len; 394 u64 data_offset; 395 u64 data_len; 396 u64 file_offset; 397 /* Pointer to a file extent item of type regular or prealloc. */ 398 char *extent_buf; 399 /* 400 * Set to true when attempting to replace a file range with a new extent 401 * described by this structure, set to false when attempting to clone an 402 * existing extent into a file range. 403 */ 404 bool is_new_extent; 405 /* Indicate if we should update the inode's mtime and ctime. */ 406 bool update_times; 407 /* Meaningful only if is_new_extent is true. */ 408 int qgroup_reserved; 409 /* 410 * Meaningful only if is_new_extent is true. 411 * Used to track how many extent items we have already inserted in a 412 * subvolume tree that refer to the extent described by this structure, 413 * so that we know when to create a new delayed ref or update an existing 414 * one. 415 */ 416 int insertions; 417 }; 418 419 /* Arguments for btrfs_drop_extents() */ 420 struct btrfs_drop_extents_args { 421 /* Input parameters */ 422 423 /* 424 * If NULL, btrfs_drop_extents() will allocate and free its own path. 425 * If 'replace_extent' is true, this must not be NULL. Also the path 426 * is always released except if 'replace_extent' is true and 427 * btrfs_drop_extents() sets 'extent_inserted' to true, in which case 428 * the path is kept locked. 429 */ 430 struct btrfs_path *path; 431 /* Start offset of the range to drop extents from */ 432 u64 start; 433 /* End (exclusive, last byte + 1) of the range to drop extents from */ 434 u64 end; 435 /* If true drop all the extent maps in the range */ 436 bool drop_cache; 437 /* 438 * If true it means we want to insert a new extent after dropping all 439 * the extents in the range. If this is true, the 'extent_item_size' 440 * parameter must be set as well and the 'extent_inserted' field will 441 * be set to true by btrfs_drop_extents() if it could insert the new 442 * extent. 443 * Note: when this is set to true the path must not be NULL. 444 */ 445 bool replace_extent; 446 /* 447 * Used if 'replace_extent' is true. Size of the file extent item to 448 * insert after dropping all existing extents in the range 449 */ 450 u32 extent_item_size; 451 452 /* Output parameters */ 453 454 /* 455 * Set to the minimum between the input parameter 'end' and the end 456 * (exclusive, last byte + 1) of the last dropped extent. This is always 457 * set even if btrfs_drop_extents() returns an error. 458 */ 459 u64 drop_end; 460 /* 461 * The number of allocated bytes found in the range. This can be smaller 462 * than the range's length when there are holes in the range. 463 */ 464 u64 bytes_found; 465 /* 466 * Only set if 'replace_extent' is true. Set to true if we were able 467 * to insert a replacement extent after dropping all extents in the 468 * range, otherwise set to false by btrfs_drop_extents(). 469 * Also, if btrfs_drop_extents() has set this to true it means it 470 * returned with the path locked, otherwise if it has set this to 471 * false it has returned with the path released. 472 */ 473 bool extent_inserted; 474 }; 475 476 struct btrfs_file_private { 477 void *filldir_buf; 478 u64 last_index; 479 struct extent_state *llseek_cached_state; 480 /* Task that allocated this structure. */ 481 struct task_struct *owner_task; 482 }; 483 484 static inline u32 BTRFS_LEAF_DATA_SIZE(const struct btrfs_fs_info *info) 485 { 486 return info->nodesize - sizeof(struct btrfs_header); 487 } 488 489 static inline u32 BTRFS_MAX_ITEM_SIZE(const struct btrfs_fs_info *info) 490 { 491 return BTRFS_LEAF_DATA_SIZE(info) - sizeof(struct btrfs_item); 492 } 493 494 static inline u32 BTRFS_NODEPTRS_PER_BLOCK(const struct btrfs_fs_info *info) 495 { 496 return BTRFS_LEAF_DATA_SIZE(info) / sizeof(struct btrfs_key_ptr); 497 } 498 499 static inline u32 BTRFS_MAX_XATTR_SIZE(const struct btrfs_fs_info *info) 500 { 501 return BTRFS_MAX_ITEM_SIZE(info) - sizeof(struct btrfs_dir_item); 502 } 503 504 int __init btrfs_ctree_init(void); 505 void __cold btrfs_ctree_exit(void); 506 507 int btrfs_bin_search(const struct extent_buffer *eb, int first_slot, 508 const struct btrfs_key *key, int *slot); 509 510 int __pure btrfs_comp_cpu_keys(const struct btrfs_key *k1, const struct btrfs_key *k2); 511 512 #ifdef __LITTLE_ENDIAN 513 514 /* 515 * Compare two keys, on little-endian the disk order is same as CPU order and 516 * we can avoid the conversion. 517 */ 518 static inline int btrfs_comp_keys(const struct btrfs_disk_key *disk_key, 519 const struct btrfs_key *k2) 520 { 521 const struct btrfs_key *k1 = (const struct btrfs_key *)disk_key; 522 523 return btrfs_comp_cpu_keys(k1, k2); 524 } 525 526 #else 527 528 /* Compare two keys in a memcmp fashion. */ 529 static inline int btrfs_comp_keys(const struct btrfs_disk_key *disk, 530 const struct btrfs_key *k2) 531 { 532 struct btrfs_key k1; 533 534 btrfs_disk_key_to_cpu(&k1, disk); 535 536 return btrfs_comp_cpu_keys(&k1, k2); 537 } 538 539 #endif 540 541 int btrfs_previous_item(struct btrfs_root *root, 542 struct btrfs_path *path, u64 min_objectid, 543 int type); 544 int btrfs_previous_extent_item(struct btrfs_root *root, 545 struct btrfs_path *path, u64 min_objectid); 546 void btrfs_set_item_key_safe(struct btrfs_trans_handle *trans, 547 const struct btrfs_path *path, 548 const struct btrfs_key *new_key); 549 struct extent_buffer *btrfs_root_node(struct btrfs_root *root); 550 int btrfs_find_next_key(struct btrfs_root *root, struct btrfs_path *path, 551 struct btrfs_key *key, int lowest_level, 552 u64 min_trans); 553 int btrfs_search_forward(struct btrfs_root *root, struct btrfs_key *min_key, 554 struct btrfs_path *path, 555 u64 min_trans); 556 struct extent_buffer *btrfs_read_node_slot(struct extent_buffer *parent, 557 int slot); 558 559 int btrfs_cow_block(struct btrfs_trans_handle *trans, 560 struct btrfs_root *root, struct extent_buffer *buf, 561 struct extent_buffer *parent, int parent_slot, 562 struct extent_buffer **cow_ret, 563 enum btrfs_lock_nesting nest); 564 int btrfs_force_cow_block(struct btrfs_trans_handle *trans, 565 struct btrfs_root *root, 566 struct extent_buffer *buf, 567 struct extent_buffer *parent, int parent_slot, 568 struct extent_buffer **cow_ret, 569 u64 search_start, u64 empty_size, 570 enum btrfs_lock_nesting nest); 571 int btrfs_copy_root(struct btrfs_trans_handle *trans, 572 struct btrfs_root *root, 573 struct extent_buffer *buf, 574 struct extent_buffer **cow_ret, u64 new_root_objectid); 575 bool btrfs_block_can_be_shared(const struct btrfs_trans_handle *trans, 576 const struct btrfs_root *root, 577 const struct extent_buffer *buf); 578 int btrfs_del_ptr(struct btrfs_trans_handle *trans, struct btrfs_root *root, 579 struct btrfs_path *path, int level, int slot); 580 void btrfs_extend_item(struct btrfs_trans_handle *trans, 581 const struct btrfs_path *path, u32 data_size); 582 void btrfs_truncate_item(struct btrfs_trans_handle *trans, 583 const struct btrfs_path *path, u32 new_size, int from_end); 584 int btrfs_split_item(struct btrfs_trans_handle *trans, 585 struct btrfs_root *root, 586 struct btrfs_path *path, 587 const struct btrfs_key *new_key, 588 unsigned long split_offset); 589 int btrfs_duplicate_item(struct btrfs_trans_handle *trans, 590 struct btrfs_root *root, 591 struct btrfs_path *path, 592 const struct btrfs_key *new_key); 593 int btrfs_find_item(struct btrfs_root *fs_root, struct btrfs_path *path, 594 u64 inum, u64 ioff, u8 key_type, struct btrfs_key *found_key); 595 int btrfs_search_slot(struct btrfs_trans_handle *trans, struct btrfs_root *root, 596 const struct btrfs_key *key, struct btrfs_path *p, 597 int ins_len, int cow); 598 int btrfs_search_old_slot(struct btrfs_root *root, const struct btrfs_key *key, 599 struct btrfs_path *p, u64 time_seq); 600 int btrfs_search_slot_for_read(struct btrfs_root *root, 601 const struct btrfs_key *key, 602 struct btrfs_path *p, int find_higher, 603 int return_any); 604 void btrfs_release_path(struct btrfs_path *p); 605 struct btrfs_path *btrfs_alloc_path(void); 606 void btrfs_free_path(struct btrfs_path *p); 607 DEFINE_FREE(btrfs_free_path, struct btrfs_path *, btrfs_free_path(_T)) 608 DEFINE_FREE(btrfs_release_path, struct btrfs_path, btrfs_release_path(&_T)) 609 610 int btrfs_del_items(struct btrfs_trans_handle *trans, struct btrfs_root *root, 611 struct btrfs_path *path, int slot, int nr); 612 static inline int btrfs_del_item(struct btrfs_trans_handle *trans, 613 struct btrfs_root *root, 614 struct btrfs_path *path) 615 { 616 return btrfs_del_items(trans, root, path, path->slots[0], 1); 617 } 618 619 /* 620 * Describes a batch of items to insert in a btree. This is used by 621 * btrfs_insert_empty_items(). 622 */ 623 struct btrfs_item_batch { 624 /* 625 * Pointer to an array containing the keys of the items to insert (in 626 * sorted order). 627 */ 628 const struct btrfs_key *keys; 629 /* Pointer to an array containing the data size for each item to insert. */ 630 const u32 *data_sizes; 631 /* 632 * The sum of data sizes for all items. The caller can compute this while 633 * setting up the data_sizes array, so it ends up being more efficient 634 * than having btrfs_insert_empty_items() or setup_item_for_insert() 635 * doing it, as it would avoid an extra loop over a potentially large 636 * array, and in the case of setup_item_for_insert(), we would be doing 637 * it while holding a write lock on a leaf and often on upper level nodes 638 * too, unnecessarily increasing the size of a critical section. 639 */ 640 u32 total_data_size; 641 /* Size of the keys and data_sizes arrays (number of items in the batch). */ 642 int nr; 643 }; 644 645 void btrfs_setup_item_for_insert(struct btrfs_trans_handle *trans, 646 struct btrfs_root *root, 647 struct btrfs_path *path, 648 const struct btrfs_key *key, 649 u32 data_size); 650 int btrfs_insert_item(struct btrfs_trans_handle *trans, struct btrfs_root *root, 651 const struct btrfs_key *key, void *data, u32 data_size); 652 int btrfs_insert_empty_items(struct btrfs_trans_handle *trans, 653 struct btrfs_root *root, 654 struct btrfs_path *path, 655 const struct btrfs_item_batch *batch); 656 657 static inline int btrfs_insert_empty_item(struct btrfs_trans_handle *trans, 658 struct btrfs_root *root, 659 struct btrfs_path *path, 660 const struct btrfs_key *key, 661 u32 data_size) 662 { 663 struct btrfs_item_batch batch; 664 665 batch.keys = key; 666 batch.data_sizes = &data_size; 667 batch.total_data_size = data_size; 668 batch.nr = 1; 669 670 return btrfs_insert_empty_items(trans, root, path, &batch); 671 } 672 673 int btrfs_next_old_leaf(struct btrfs_root *root, struct btrfs_path *path, 674 u64 time_seq); 675 676 int btrfs_search_backwards(struct btrfs_root *root, struct btrfs_key *key, 677 struct btrfs_path *path); 678 679 int btrfs_get_next_valid_item(struct btrfs_root *root, struct btrfs_key *key, 680 struct btrfs_path *path); 681 682 /* 683 * Search in @root for a given @key, and store the slot found in @found_key. 684 * 685 * @root: The root node of the tree. 686 * @key: The key we are looking for. 687 * @found_key: Will hold the found item. 688 * @path: Holds the current slot/leaf. 689 * @iter_ret: Contains the value returned from btrfs_search_slot or 690 * btrfs_get_next_valid_item, whichever was executed last. 691 * 692 * The @iter_ret is an output variable that will contain the return value of 693 * btrfs_search_slot, if it encountered an error, or the value returned from 694 * btrfs_get_next_valid_item otherwise. That return value can be 0, if a valid 695 * slot was found, 1 if there were no more leaves, and <0 if there was an error. 696 * 697 * It's recommended to use a separate variable for iter_ret and then use it to 698 * set the function return value so there's no confusion of the 0/1/errno 699 * values stemming from btrfs_search_slot. 700 */ 701 #define btrfs_for_each_slot(root, key, found_key, path, iter_ret) \ 702 for (iter_ret = btrfs_search_slot(NULL, (root), (key), (path), 0, 0); \ 703 (iter_ret) >= 0 && \ 704 (iter_ret = btrfs_get_next_valid_item((root), (found_key), (path))) == 0; \ 705 (path)->slots[0]++ \ 706 ) 707 708 int btrfs_next_old_item(struct btrfs_root *root, struct btrfs_path *path, u64 time_seq); 709 710 /* 711 * Search the tree again to find a leaf with greater keys. 712 * 713 * Returns 0 if it found something or 1 if there are no greater leaves. 714 * Returns < 0 on error. 715 */ 716 static inline int btrfs_next_leaf(struct btrfs_root *root, struct btrfs_path *path) 717 { 718 return btrfs_next_old_leaf(root, path, 0); 719 } 720 721 static inline int btrfs_next_item(struct btrfs_root *root, struct btrfs_path *p) 722 { 723 return btrfs_next_old_item(root, p, 0); 724 } 725 int btrfs_leaf_free_space(const struct extent_buffer *leaf); 726 727 static inline bool btrfs_is_fstree(u64 rootid) 728 { 729 if (rootid == BTRFS_FS_TREE_OBJECTID) 730 return true; 731 732 if ((s64)rootid < (s64)BTRFS_FIRST_FREE_OBJECTID) 733 return false; 734 735 if (btrfs_qgroup_level(rootid) != 0) 736 return false; 737 738 return true; 739 } 740 741 static inline bool btrfs_is_data_reloc_root(const struct btrfs_root *root) 742 { 743 return root->root_key.objectid == BTRFS_DATA_RELOC_TREE_OBJECTID; 744 } 745 746 #endif 747